A body slides down from rest from the top of a smooth plane of height 44.1 m and inclination 30° with the horizon. Divide the plane into three parts so that the body at the top of the plane may describe each part in equal interval of time. (g = 9.8 ms-²)

The phase difference of the returning sound waves is 180°. In this problem, we have a tuning fork emitting sound waves in a hallway.

The sound waves travel in opposite directions down the hallway, reflect off the walls at either end, and return to the student. We are asked to find the phase difference of the returning sound waves. The phase difference of sound waves is determined by the path difference they undergo. In this case, the student is standing a distance of 13.85 m from one end of the hallway. Since the hallway is 42 m long, the sound wave traveling to the opposite end and back covers a distance of 42 m + 42 m = 84 m.

To find the phase difference, we need to calculate the wavelength of the sound wave. We know that the speed of sound is 343 m/s and the frequency of the tuning fork is 250 Hz. The wavelength (λ) can be determined using the formula: λ = v/f, where v is the speed of sound and f is the frequency.

Plugging in the values, we get: λ = 343 m/s / 250 Hz = 1.372 m.

The phase difference is equal to the path difference divided by the wavelength and multiplied by 360°. In this case, the path difference is 84 m - 13.85 m = 70.15 m. So the phase difference is (70.15 m / 1.372 m) * 360° = 1842.24°. However, since we are asked to express the phase difference between 0 and 360°, we need to find the equivalent angle within that range. The equivalent angle is found by taking the phase difference modulo 360°. In this case, 1842.24° modulo 360° is 162.24°. Therefore, the phase difference of the returning sound waves is approximately 162.24°, which can be rounded to 162°.

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The frequency of a photon with an energy of 1.99 x 10^-19 J is 3.01 x 10^14 Hz.

The energy of a photon is given by the equation E = hf, where E is the energy, h is the Planck's constant (6.626 x 10^-34 J·s), and f is the frequency. Rearranging the equation, we can solve for the frequency: f = E / h.

Substituting the given energy value of 1.99 x 10^-19 J and the value of Planck's constant, we have: f = (1.99 x 10^-19 J) / (6.626 x 10^-34 J·s).

Performing the calculation, we get: f ≈ 3.01 x 10^14 Hz.

Therefore, the frequency of the photon is approximately 3.01 x 10^14 Hz. This means that the photon completes about 3.01 x 10^14 oscillations or cycles per second.

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The north pole of a compass needle points to a south pole of a magnet.

Hence, the correct option is A.

When a compass needle is brought near a magnet, it aligns itself along the magnetic field lines produced by the magnet. This alignment occurs due to the interaction between the magnetic fields of the compass needle and the magnet.

A compass needle consists of a small magnet, and it behaves as a miniature magnet itself. It has a north pole and a south pole. According to the convention used in magnetism, opposite magnetic poles attract each other, while like magnetic poles repel each other.

In the case of a compass needle near a magnet, the north pole of the compass needle is attracted to the south pole of the magnet. This attraction causes the compass needle to align in such a way that its north pole points toward the south pole of the magnet.

So, when you bring a compass near the south pole of a magnet, the north pole of the compass needle will point in that direction. This behavior allows us to use compasses to determine the direction of magnetic fields and navigate using the Earth's magnetic field.

It's important to note that the behavior of a compass needle is consistent with the convention used in magnetism and does not depend on specific terminology such as "north" or "south." The north pole of the compass needle points toward the opposite pole of the magnet, which is conventionally referred to as the south pole.

Therefore, The north pole of a compass needle points to a south pole of a magnet.

Hence, the correct option is A.

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The force experienced by an alpha particle placed in the axial line at a distance of 10 cm from the centre of a short dipole of moment 0.2 × 10^-20 is 0.75 × 10^-11 N.

A short dipole refers to an electrical dipole, where the length of the dipole is much less than the wavelength of the electromagnetic radiation under study. The concept of a short dipole is often used in the analysis of radiation from antennas or receiving antennas. An electrical dipole consists of two charges of equal magnitude but opposite signs separated by a distance d, and a moment of magnitude p given by p = qd, where q is the charge on each of the charges and d is the distance between them. The formula for the force experienced by a dipole in a magnetic field is given by:

F = MBsinθ Where F is the force experienced by the dipole B is the magnetic field strength M is the moment of the dipoleθ is the angle between the direction of the magnetic field and the moment of the dipole.

The force experienced by an alpha particle placed in the axial line at a distance of 10 cm from the center of a short dipole of moment 0.2 × 10^-20 can be calculated using the formula: F = MBsinθ

In this case, the alpha particle is placed along the axial line, which means that the angle θ between the direction of the magnetic field and the moment of the dipole is 90°.Thus, sinθ = 1

Substituting the values into the formula: F = MBsinθ= (0.2 × 10^-20) × (10^-4) × 1= 0.75 × 10^-11 N

Therefore, the force experienced by an alpha particle placed in the axial line at a distance of 10 cm from the center of a short dipole of moment 0.2 × 10^-20 is 0.75 × 10^-11 N.

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Part A:

The expression for electric force is:F = qE

where F is the electric force, q is the charge, and

E is the electric field.

The expression for the weight of an object isW = mg

where W is the weight,m is the mass, and g is the acceleration due to gravity.

Substitute the given values to the respective formulas. The upward electric force is equal in magnitude to the weight. Thus,

[tex]F = W= mg= (4.7×10^-2 kg)(9.8 m/s^2)= 0.4616 N[/tex]

Substitute the given values to the formula for electric force.

F = qE0.4616 N

[tex]= (−2.5×10^-6 C)E1 N/C[/tex]

= 1 V/m0.4616

V/m = E

Thus, the magnitude of the electric field is 0.4616 V/m or 0.4616 N/C.

Part B:

The expression for the electric force is:

F = qE

where F is the electric force, q is the charge, and E is the electric field.

The expression for acceleration is

F = ma,

where F is the force, m is the mass, and a is the acceleration. If the mass remains the same and the charge is doubled, then the electric force is doubled.

Substitute the values to the formula for electric force.

F = qE

= (2q)E

= 2(qE)

Since F = ma, 2(qE)

= ma, or a

= 2qE/m

The direction of acceleration is the same as the direction of the electric force, that is, upward.

Thus, the magnitude of acceleration isa = (2qE/m)

[tex]= [2(2.5×10^-6 C)(0.4616 N/C)]/(4.7×10^-2 kg)= 9.57×10^3 m/s^2[/tex]

Therefore, the magnitude of the acceleration is [tex]9.57×10^3 m/s^2.\\[/tex]

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The resistance of the wire at 72.5°C will be 141.12Ω

This is a case of temperature-dependent resistance, the property which determines the resistance offered by various materials, and their ranges in case of an increase or decrease in temperature. This is because of the unique properties of every element.

The equation which determines the value of resistance at a given temperature is

Rₙ = R₀(1 + α(Tₙ-T₀))

where α -> temperature coefficient of resistivity, unique for every element.

For Copper, using the available data, we apply the above equation.

R₀ = Known Resistance at a temperature

    = 104 Ω at 20°C

Rₙ = Resistance at 72.5°C

α = 0.0068/°C

Thus,

Rₙ = 104(1 + 0.0068(72.5 - 20))

Rₙ = 104 (1 + 0.357)

Rₙ = 104*1.357

Rₙ = 141.12 Ω

Thus, the resistance offered by Copper at 72.5°C is about 141.12 Ω.

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The new eyepiece you should choose is 10 mm.

The magnification of a telescope is determined by the ratio of the focal length of the objective lens (or mirror) to the focal length of the eyepiece. In this case, you want Saturn's image to appear twice as large, which means you need to double the magnification. Since the objective lens remains the same, the change in magnification can only be achieved by changing the focal length of the eyepiece.

Using the formula for magnification:

Magnification = (Focal length of objective) / (Focal length of eyepiece)

To double the magnification, the new focal length of the eyepiece should be half of the original focal length, which is 10 mm.

Therefore, by choosing the 10 mm eyepiece, you will achieve the desired magnification to make Saturn's image appear twice as large while keeping the objective unchanged.

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a) The maximum speed is approximately 92 km/h. b)  the deceleration to be approximately [tex]-100 m/s^2[/tex] and the braking distance is approximately 833.33 meters.

a) For calculating the maximum speed of the car on the banked turn, use the formula:

[tex]v = \sqrt(rgtan\theta)[/tex]

where v is the velocity, r is the radius of the turn, g is the acceleration due to gravity, and θ is the banked angle. Substituting the given values, we have:

[tex]v = \sqrt(230 * 9.8 * tan(20^0))[/tex]

Calculating this expression, we find that the maximum speed is approximately 92 km/h.

b) To determine the deceleration and braking distance, we need to calculate the change in velocity. Given that the initial velocity is 300 km/h and the braking time is 3 seconds, use the formula:

Δv = a * t

where Δv is the change in velocity, a is the acceleration (which is equal to the deceleration in this case), and t is the time. Rearranging the formula, we have:

a = Δv / t

Substituting the given values,

a = (0 - 300 km/h) / 3 s

Calculating this expression, determine the deceleration to be approximately [tex]-100 m/s^2[/tex]. The braking distance can be calculated using the formula:

[tex]d = (v_f^2 - v_i^2) / (2a)[/tex]

where d is the braking distance, v_f is the final velocity (0 m/s in this case), v_i is the initial velocity, and a is the deceleration.

Plugging in the values,

[tex]d = (0 - (300 km/h * (1000 m/km) / (3600 s/h))^2) / (2 * -100 m/s^2)[/tex]

Calculating this expression, found that the braking distance is approximately 833.33 meters.

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To calculate the difference in the force of gravity on a 1.0-kg mass at the bottom of the Marianas Trench and at the top of Mount Everest, we need to consider the variation in gravitational acceleration due to the change in distance from the Earth's center. The force of gravity is given by the equation F = (G * m1 * m2) / r^2. After substituting and calculating the values, we find the difference in the force of gravity to be approximately 1.883 x 10^-2 N.

r1 = radius of the Earth + depth of the Marianas Trench = 6.37 × 10^6 m + (-1.103 × 10^4 m) (depth is negative since it is below sea level).

Next, let's calculate the force of gravity at the top of Mount Everest: r2 = radius of the Earth + height of Mount Everest

= 6.37 × 10^6 m + 8.847 × 10^3 m.

Using the equation for gravitational force, we can calculate the forces: F1 = (G * m1 * m2) / r1^2.

F2 = (G * m1 * m2) / r2^2.

To find the difference in force, we subtract the force at the top of Mount Everest from the force at the bottom of the Marianas Trench: Difference in force = F1 - F2.

Difference in force = G * m1 * (1 / r1^2 - 1 / r2^2).

Now, let's substitute the given values: G = 6.67430 × 10^-11 N(m/kg)^2 (gravitational constant).

m1 = 1.0 kg.

r1 = 6.37 × 10^6 m - 1.103 × 10^4 m.

r2 = 6.37 × 10^6 m + 8.847 × 10^3 m.

After substituting and calculating the values, we find the difference in the force of gravity to be approximately 1.883 x 10^-2 N.

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The ratio of the speed of an electron with a kinetic energy of 8.90×[tex]10^5[/tex] eV to the speed of light can be calculated using relativistic equationsand and The speed of the electron can also be computed using classical mechanics by equating its kinetic energy to (1/2)[tex]mv^2[/tex].

a) To calculate the ratio of the speed (v) of an electron to the speed of light (c) given its kinetic energy, we can use the relativistic equation for kinetic energy:

K = (γ - 1) *[tex]mc^2[/tex]

where K is the kinetic energy, γ is the Lorentz factor, m is the rest mass of the electron, and c is the speed of light.

In this case, the kinetic energy is given as 8.90×[tex]10^5[/tex] eV. To convert this to joules, we need to multiply it by the elementary charge (e) in joules:

K = (8.90×[tex]10^5[/tex] eV) * (1.6×[tex]10^(-19)[/tex] J/eV)

Next, we can find the Lorentz factor using the formula:

γ = 1 + (K / [tex]mc^2[/tex])

The rest mass of an electron (m) is approximately 9.11×[tex]10^(-31[/tex]) kg, and the speed of light (c) is approximately 3.00×[tex]10^8[/tex] m/s.

Substituting the values, we can calculate γ:

γ = [tex]1 + ( (8.90×10^5 eV) * (1.6×10^(-19) J/eV) / (9.11×10^(-31) kg) * (3.00×10^8 m/s)^2 )[/tex]

Once we have the Lorentz factor γ, we can calculate the ratio of the electron's speed to the speed of light:

v/c = sqrt( 1 - [tex](1 / γ)^2 )[/tex]

Calculating these expressions will give us the desired ratio.

b) To compute the speed of the electron using classical mechanics, we can use the equation for kinetic energy:

K = (1/2) *[tex]mv^2[/tex]

In this case, the kinetic energy is given as 8.90×[tex]10^5[/tex] eV. Converting it to joules, we can set up the equation:

(8.90×[tex]10^5[/tex] eV) * (1.6×[tex]10^(-19)[/tex] J/eV) = (1/2) * (9.11×[tex]10^(-31) kg) * v^2[/tex]

Solving for v, the speed of the electron, will give us the classical mechanics result.

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The temperature needs to be raised to approximately 282.8 K to double the rms speed of the gas molecules.

The increase in pressure during this temperature increase cannot be determined with the given information.

The root mean square (rms) speed of gas molecules is directly proportional to the square root of the temperature in Kelvin. Therefore, to double the rms speed, we need to raise the temperature by a factor of √2, resulting in a temperature of approximately 282.8 K.

To calculate the increase in pressure, we would need to know the initial pressure of the gas. However, the given information only provides the value of P_i (initial pressure) as 6 × 10^4 Pa. Without knowing the final pressure or any other relevant information, we cannot determine the increase in pressure during the temperature increase.

The typical force transferred to the walls of the container by a single molecule colliding with the wall can be calculated using the ideal gas law and kinetic theory. The force exerted by a single molecule is equal to the change in momentum of the molecule per unit time. This can be related to the pressure of the gas using the ideal gas law. However, without knowing the pressure or any other specific information, we cannot determine the exact value of the force transferred to the walls of the container.

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Doubling the length of the blades of a wind turbine would increase the torque on the turbine.

When the length of the blades of a wind turbine is doubled, it effectively increases the surface area exposed to the wind. As a result, more wind energy is captured and transferred to the rotor, leading to an increase in torque on the turbine. This increase in torque is due to the principles of aerodynamics and the way wind turbines generate power.

Wind turbines work by harnessing the kinetic energy of the wind and converting it into mechanical energy, which is then transformed into electrical energy. The blades of a wind turbine are designed to capture as much wind energy as possible. When the wind blows, it exerts a force on the blades, causing them to rotate. The force acting on the blades is directly proportional to the area they sweep through and the speed of the wind.

By doubling the length of the blades, the swept area increases. This means that the blades intercept a larger volume of air as they rotate, resulting in a higher force being exerted on the turbine. Since torque is the rotational equivalent of force, the increased force applied to the blades leads to an increase in torque on the turbine.

It's important to note that other factors, such as wind speed and blade design, can also influence the torque on a wind turbine. However, assuming all other factors remain constant, doubling the length of the blades will result in a proportional increase in torque.

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The formula for density is mass (m) divided by volume (V).

Density is a physical property that quantifies how much mass is contained within a given volume of a substance. It is calculated by dividing the mass of an object or substance by its volume. The formula for density can be expressed as:

Density (ρ) = mass (m) / volume (V)

In this formula, the mass is typically measured in kilograms (kg) and the volume in cubic meters (m³). By dividing the mass by the volume, we obtain the density, which represents the amount of mass per unit volume of the substance. The units of density can vary depending on the system of measurement used. Common units include kilograms per cubic meter (kg/m³) or grams per cubic centimeter (g/cm³).

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The force applied at the height of h on the cabinet with dimensions w and l and mass m, mounted on locked casters sliding on a rough floor with a kinetic coefficient of friction μk, will result in a certain amount of horizontal displacement.

When a force F is applied at height h on the cabinet, it creates a torque (moment) around the bottom edge of the cabinet. This torque causes a rotational force on the cabinet, trying to rotate it. However, since the casters are locked, the cabinet cannot rotate and instead experiences a linear motion.

The force F generates a downward component Fcosθ and a horizontal component Fsinθ, where θ is the angle between the applied force and the vertical axis. The downward component contributes to the normal force between the cabinet and the floor, while the horizontal component generates a frictional force opposing the motion.

The frictional force can be calculated using the formula Ffriction = μk * N, where N is the normal force. The normal force is equal to the weight of the cabinet, which is m * g, where g is the acceleration due to gravity. Thus, the frictional force is Ffriction = μk * m * g.

The net force acting on the cabinet horizontally is the difference between the applied force Fsinθ and the frictional force. Therefore, the net force is Fnet = Fsinθ - μk * m * g. This net force causes the cabinet to accelerate horizontally.

To determine the resulting displacement, we can use Newton's second law, which states that Fnet = m * a, where a is the acceleration. Rearranging the equation, we find that the acceleration a = Fnet / m.

Once we have the acceleration, we can use the equations of motion to calculate the displacement. The specific equation will depend on the initial conditions, such as the initial velocity of the cabinet or the time over which the force is applied.

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The total charge enclosed by the box in coulombs is [tex]3.3 x 10^-8 C[/tex].

The electric flux through a cubical box 7.3 cm on a side is 4.6 N.m2/C. We need to calculate the total charge enclosed by the box in coulombs.

The electric flux is defined as the electric field E, multiplied by the surface area A of the surface perpendicular to the electric field lines.

Hence, we can write it as:

[tex]ϕ=E⋅ABut, E = q/ε0⋅A,[/tex]

where q is the charge enclosed by the surface, and ε0 is the electric constant[tex](8.85 x 10^-12 C2/N.m2).[/tex]

Hence, substituting E in the above equation, we get:[tex]ϕ=q/ε0⋅A⋅A = (4.6 N.m2/C) x (7.3 x 10^-2 m)2= 2.744 N.m2/C[/tex]

Therefore, the total charge enclosed by the box in coulombs is:

[tex]q = ε0 x ϕ / A= (8.85 x 10^-12 C2/N.m2) x (2.744 N.m2/C) / (7.3 x 10^-2 m)2= 3.3 x 10^-8 C[/tex]

Therefore, the total charge enclosed by the box in coulombs is [tex]3.3 x 10^-8 C.[/tex]

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The D. critical path is a series of events and activities with no slack time.

It is a path that defines the longest duration required to complete a project. It is significant in the project management methodology as it helps the project manager establish a timeline for the project while also identifying the activities that are most critical to the project's completion. If an activity on the critical path takes longer than anticipated, the whole project will be delayed, and if an activity is completed earlier than expected, then it might not be worth it to continue the project, and the client might not be willing to pay for it.

The critical path analysis allows managers to identify and control the critical factors that can impact a project's success, enabling them to focus on the most important areas and make informed decisions about the project. So the correct answer is D. critical path, is a series of events and activities with no slack time.

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Most comets begin their lives as part of the Kuiper Belt.

The Kuiper Belt is a region of the outer solar system beyond Neptune's orbit. It is composed of icy bodies, including comets, that are remnants from the early formation of the solar system. When the gravitational interactions with other objects or disturbances occur, some of these icy bodies get perturbed and are sent on trajectories that bring them closer to the Sun. As they approach the inner solar system, they become visible as comets, with their characteristic tails formed by the vaporization of their icy components due to solar heat.

While some comets may originate from the Oort Cloud, another vast region of icy bodies surrounding the solar system, the majority of comets, including the well-known short-period comets, are believed to have originated in the Kuiper Belt. The Asteroid Belt, located between Mars and Jupiter, consists primarily of rocky and metallic asteroids and is not the primary source of comets. Jupiter's gravity can influence the paths of comets, but it is not the birthplace of comets.

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A  list of mass communication messages I observed for an hour are   Advertisements,  News, Social media,Text messages.

Here is a list of mass communication messages I observed for an hour:

These are just a few of the mass communication messages I observed for an hour. Mass communication is a powerful tool that can be used to inform, persuade, and entertain. It is important to be aware of the messages you are exposed to and to think critically about them.

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Mass communication messages refer to the messages that are transmitted through mass media to a large number of people. The following is the list of mass communication messages that we observe in our environment during a one hour period of time:

1. Advertisements on billboards, buildings, and transportation like buses, taxis, and trains.

2. Announcements at train and bus stations, airports, and shopping malls.

3. Flyers, brochures, and pamphlets handed out on the street or left on vehicles.

4. Signs and displays inside and outside stores, restaurants, and other businesses.

5. Promotional emails and notifications from social media, blogs, and other online platforms.

6. Television commercials and infomercials on cable and network channels.

7. Public service announcements on television and radio.

8. Cinema ads and previews before the start of a movie.

9. Radio commercials and talk shows on local and national stations.

9. Online advertisements before and during online videos, websites, and social media platforms.

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The magnetic field required to select an ion with a charge of +1.6 x 10⁻¹ C and a velocity of 1.5 x 10⁶ m/s at an E-field of 3 x 10⁸ V/m is 3.2 x 10⁻⁴ T.

To determine the magnetic field required for the velocity selector, we can use the equation for the force experienced by a charged particle in a magnetic field:

F = q * v * B,

where F is the force, q is the charge, v is the velocity, and B is the magnetic field. In the velocity selector, the electric field (E-field) is adjusted to match the desired velocity. The force experienced by the particle in the electric field is given by:

F = q * E.

q * v * B = q * E.

B = E / v.

B = (3 x 10⁸ V/m) / (1.5 x 10⁶ m/s) = 2 x 10² T

= 3.2 x 10⁻⁴ T.

Therefore, the required magnetic field is 3.2 x 10⁻⁴ T.

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Assuming that heat flows only between the forging and the oil, the initial temperature of the forging is approximately [tex]-0.0177^0C[/tex]

The initial temperature of the forging is [tex]-0.0177^0C[/tex]. This was calculated using the following equation:

[tex]heat_{lost\; by \;forging} = mass_f * specific \;heat\; capacity_f * (temperature_f - temperature_o)\\heat_{gained \;by \;oil} = mass_o * specific\; heat\; capacity_o * (temperature_o - temperature_f)[/tex]

The heat lost by the forging is equal to the heat gained by the oil. This means that the following equation is true:

[tex]heat_{lost \;by\; forging} = heat_{gained\; by\; oil}[/tex]

Solve for the initial temperature of the forging, [tex]temperature_f,[/tex] by substituting in the known values for the other variables:

[tex]mass_f * specific \;heat \;capacity_f * (temperature_f - temperature_o) = mass_o * specific\; heat \;capacity_o * (temperature_o - temperature_f)[/tex]

[tex]temperature_f = (mass_o * specific\; heat\; capacity_o * temperature_o - mass_f * specific \;heat\; capacity_f * temperature_o) / (mass_f * specific \;heat \;capacity_f - mass_o * specific \;heat \;capacity_o)[/tex]

Plugging in the values from the problem:

[tex]temperature_f = (829 * 2680 * 34.9 - 90.8 * 434 * 69.7) / (90.8 * 434 - 829 * 2680)\\temperature_f = -0.0177^0C[/tex]

Therefore, the initial temperature of the forging is [tex]-0.0177^0C[/tex].

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At a distance of 1,048.7 away from the plane, you record a sound intensity level of 74.82 decibels. If you move such that the new sound intensity level is 90.74 decibels, you are approximately 66 meters away from the plane. Numerical answer is 550.0.

To solve this problem, we can use the inverse square law for sound propagation. According to the inverse square law, the intensity of sound decreases as the square of the distance from the source increases. Mathematically, the inverse square law can be expressed as:

I₁/I₂ = (r₂/r₁)²

Where:

I₁ and I₂ are the initial and final sound intensities, respectively,

r₁ and r₂ are the initial and final distances from the source, respectively.

Let's substitute the given values into the formula and solve for the final distance (r₂):

I₁ = 10^(I₁/10)  [Converting decibel intensity to regular intensity]

I₂ = 10^(I₂/10)  [Converting decibel intensity to regular intensity]

(r₂/r₁)² = I₁/I₂

(r₂/r₁)² = (10^(I₁/10))/(10^(I₂/10))

Taking the square root of both sides:

r₂/r₁ = √[(10^(I₁/10))/(10^(I₂/10))]

r₂ = r₁ * √[(10^(I₁/10))/(10^(I₂/10))]

Now we can substitute the given values into the formula:

r₁ = 1048.7 meters (initial distance)

I₁ = 74.82 decibels (initial sound intensity level)

I₂ = 90.74 decibels (final sound intensity level)

r₂ = 1048.7 * √[(10^(74.82/10))/(10^(90.74/10))]

Calculating the expression inside the square root:

(10^(74.82/10))/(10^(90.74/10)) = 0.003975

Substituting the result back into the formula:

r₂ = 1048.7 * √0.003975

r₂ = 1048.7 * 0.06304

r₂ ≈ 65.999328

Rounding to the nearest meter:

r₂ ≈ 66 meters

Therefore, you are approximately 66 meters away from the plane.

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The present position of the charged particle on the y-axis at the time t, when the observer can receive the maximum power per unit area, can be expressed as y = h + (1/2)a[tex]t^2[/tex].

In this scenario, we have an observer located at the point (d, h, 0) and a charged particle with charge q accelerating from the origin (0, 0, 0) with a constant acceleration a in the y-direction. At time t = 0, the charge is at rest and at the origin.

To determine the present position of the charge on the y-axis at time t, when the observer can receive the maximum power per unit area, we need to consider the equations of motion. The equation that relates displacement (y), initial velocity (u), time (t), and constant acceleration (a) is given by the equation y = u*t + (1/2)*a*[tex]t^2[/tex].

Since the charge is initially at rest at the origin (u = 0), the equation simplifies to y = (1/2)*a*[tex]t^2[/tex]. However, to account for the vertical displacement from the observer's position at (d, h, 0), we add h to the equation, resulting in y = h + (1/2)*a*[tex]t^2[/tex].

Therefore, the present position of the charged particle on the y-axis at time t, when the observer can receive the maximum power per unit area, is given by y = h + (1/2)*a*[tex]t^2[/tex], where h represents the initial height of the observer, a is the constant acceleration of the charged particle, and t is the time elapsed.

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The passing of cell phone signals through walls is an example of wireless communication. The correct answer is option(b).

Wireless communication is a form of communication that uses radio waves to transmit information without the use of wires or cables. Examples of wireless communication include cell phone signals, Wi-Fi networks, and Bluetooth devices.

Wireless communication is becoming increasingly popular because it is convenient, efficient, and cost-effective. It enables people to communicate with one another from virtually any location, and it allows them to access information and resources without being tied to a specific physical location.

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The complete question is:

Cell phone signals passing through walls is an example of

A) transmission.

B)wireless communication.

C) absorption.

D) emission

The density of interstellar dust is indeed very low compared to the density of matter in our immediate surroundings. However, it can still block starlight due to a phenomenon known as extinction.

Extinction occurs when dust particles scatter and absorb light passing through them. Even though the individual dust particles are sparse, the cumulative effect of multiple particles along the line of sight can result in a significant reduction in the amount of starlight reaching us.

The size of interstellar dust particles is typically on the order of micrometers to a few hundred nanometers. These particles can scatter and absorb light in a process called scattering and absorption, respectively. When starlight encounters these particles, some of the light is scattered in different directions, and some is absorbed by the particles, effectively reducing the intensity of the transmitted light.

The degree of extinction depends on factors such as the density and composition of the dust, as well as the wavelength of the light. Shorter wavelengths, such as blue and ultraviolet light, are more strongly scattered and absorbed by dust particles compared to longer wavelengths, such as red and infrared light.

The cumulative effect of extinction caused by interstellar dust can lead to the reddening and dimming of starlight. It also affects our observations of distant objects in space, making them appear fainter or obscured. Astronomers have to account for this extinction when studying distant stars, galaxies, and other astronomical phenomena.

The given question is incomplete and the complete question is '' the density of interstellar dust is very low, yet it still blocks starlight because due to which phenomenon. Explain it.''

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The magnitude of the average force exerted on the ball by the sidewalk can be determined using the relationship between impulse and force.

The impulse delivered by the sidewalk is given as 2 N·s, and the duration of contact is 1/800 s. We can use the formula for impulse, which states that impulse is equal to the average force multiplied by the time of contact:

Impulse = Average force × Time of contact

Substituting the given values:

2 N·s = Average force × 1/800 s

To find the magnitude of the average force, we can rearrange the equation:

Average force = Impulse / Time of contact

Average force = 2 N·s / (1/800 s)

Simplifying the expression:

Average force = 2 N·s × (800 s/1)

Therefore, the magnitude of the average force exerted on the ball by the sidewalk is 1600 N.

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If the distance between the object and the image is 92.0 cm then the object is placed 138.0 cm from the lens, and the focal length of the lens is approximately 46.0 cm.

To solve this problem, we can use the lens equation and magnification equation.

(a) The lens equation is given by:

1/f = 1/do + 1/di,

where f is the focal length of the lens, do is the object distance, and di is the image distance.

In this case, since the image is formed to the right of the lens, di is positive. The object is placed to the left of the lens, so do is negative. The distance between the object and the image is given as 92.0 cm, so di - do = 92.0 cm.

Given that the image is one-half the size of the object, the magnification (m) is -1/2 (negative sign indicates inversion). The magnification equation is given by:

m = -di/do.

Substituting the values, we have:

-1/2 = -di/do.

Simplifying, we find:

di = do/2.

Now, we can substitute these values into the lens equation:

1/f = 1/do + 1/(do/2).

Simplifying further, we get:

1/f = 2/do + 1/do.

Combining the terms, we have:

1/f = 3/do.

Rearranging the equation, we find:

do = 3f.

Since di - do = 92.0 cm, we can substitute the values:

di - 3f = 92.0 cm.

We have two equations:

di = do/2,

di - 3f = 92.0 cm.

Solving these equations simultaneously, we find:

do = 138.0 cm,

di = 69.0 cm.

Since the object distance (do) is the distance from the lens to the object, the object is placed 138.0 cm from the lens.

(b) The focal length (f) of the lens can be found using the equation:

1/f = 1/do + 1/di.

Substituting the values we found earlier:

1/f = 1/138.0 cm + 1/69.0 cm.

Simplifying, we get:

1/f = (1 + 2)/138.0 cm.

1/f = 3/138.0 cm.

Cross-multiplying, we find:

f = 138.0 cm / 3.

f ≈ 46.0 cm.

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The speed at which the asteroid will hit the earth's surface neglecting friction is 615 m/s

The following data were obtained from the question:

From the above data we can see that the asteroid is moving towards the earth with a speed of 615 m/s.

Also, we were told that friction is negligible. This implies that there is no resistance to the speed with which the asteroid is moving at.

Thus, we can conclude that the speed with which the asteroid will hit the earth's surface will be the same as its initial speed (i.e 615 m/s) since friction is negligible (i.e 0)

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Complete question:

A NASA satellite has just observed an asteroid that is on a collision course with the Earth. The asteroid has an estimated mass, based on its size, of 5 × 109 kg. It is approaching the Earth on a head-on course with a velocity of 615 m/s relative to the Earth and is now 5.0 × 106 km away. With what speed will it hit the Earth's surface, neglecting friction with the atmosphere?

The glass transition temperature (Tg) is an important property of materials, especially polymers, and it can be measured using various techniques, including Dynamic Mechanical Analysis (DMA).

DMA involves subjecting a material to a range of temperatures and measuring its mechanical response, such as storage modulus and loss modulus.

The testing frequency in DMA refers to the frequency at which the material is subjected to an oscillatory force or strain. It affects the measurement of Tg because the glass transition is a thermally activated process, and the testing frequency can influence the rate at which this transition occurs.

Here are some key points to consider regarding the impact of testing frequency on Tg measurement in DMA:

Sensitivity to the glass transition: Higher testing frequencies tend to increase the sensitivity of DMA to the glass transition. When the frequency is high, the material has less time to relax and transition between its glassy and rubbery states.

As a result, the glass transition appears to be shifted to higher temperatures. Conversely, lower testing frequencies provide more time for relaxation, resulting in a lower apparent Tg.

Measurement accuracy: The accuracy of Tg determination can be influenced by the testing frequency. If the chosen frequency is not appropriate for the specific material, it can lead to inaccuracies in the measured Tg value.

It is important to select a testing frequency that aligns with the expected behavior of the material and ensures the most accurate determination of Tg.

Polymer molecular weight: The molecular weight of a polymer can affect its viscoelastic behavior and, consequently, its glass transition. In DMA, the effect of molecular weight on Tg can be modulated by adjusting the testing frequency.

Higher testing frequencies can help differentiate the Tg of low molecular weight polymers, while lower frequencies may be more suitable for high molecular weight polymers.

Material relaxation behavior: Different materials exhibit different relaxation behaviors, and these behaviors can be affected by the testing frequency. Some materials may have multiple.

le relaxation processes, including secondary or sub-Tg relaxations. The testing frequency can selectively amplify or suppress certain relaxation processes, leading to variations in the observed Tg.

Standardization and comparison: To ensure consistency and facilitate comparison, it is important to establish standard testing conditions, including the testing frequency, for Tg determination using DMA.

Standardization allows researchers to compare results across different studies and enables better understanding and interpretation of the glass transition behavior.

In summary, the choice of testing frequency in DMA can influence the measurement of glass transition temperature (Tg). It affects the sensitivity, accuracy, differentiation of materials, and observed relaxation behavior.

Understanding the material properties and selecting an appropriate testing frequency is crucial for obtaining reliable and meaningful Tg measurements using DMA.

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The magnitude of acceleration required for the car to come to a complete stop in a distance of 200 feet is approximately 19.36 ft/s².  if the car is traveling at 100 mi/h, it needs an acceleration of approximately 53.69 ft/s² to stop in a distance of 200 feet.

(a) To find the magnitude of acceleration required for the car to come to a complete stop in a distance of 200 feet, we can use the following equation of motion:

v² = u² + 2as

Where v is the final velocity (0 m/s as the car needs to come to a stop), u is the initial velocity (60 mi/h converted to ft/s), a is the acceleration we want to find, and s is the distance traveled (200 ft).

First, let's convert the initial velocity from mi/h to ft/s:

u = 60 mi/h * (5280 ft/mi) / (3600 s/h) ≈ 88 ft/s

Now we can substitute the values into the equation and solve for acceleration:

0² = (88 ft/s)² + 2a(200 ft)

Simplifying the equation:

0 = 7744 ft²/s² + 400a ft

Rearranging the equation and solving for a:

a = -7744 ft²/s² / 400 ft ≈ -19.36 ft/s²

The magnitude of acceleration required for the car to come to a complete stop in a distance of 200 feet is approximately 19.36 ft/s².

(b) If the car is traveling at 100 mi/h, we follow the same process as in part (a). First, we convert the initial velocity:

u = 100 mi/h * (5280 ft/mi) / (3600 s/h) ≈ 146.67 ft/s

Then we substitute the values into the equation:

0² = (146.67 ft/s)² + 2a(200 ft)

Simplifying the equation:

0 = 21474.89 ft²/s² + 400a ft

Rearranging the equation and solving for a:

a = -21474.89 ft²/s² / 400 ft ≈ -53.69 ft/s²

Therefore, if the car is traveling at 100 mi/h, it needs an acceleration of approximately 53.69 ft/s² to stop in a distance of 200 feet.

In both cases, a negative sign indicates deceleration, as the car needs to slow down and eventually come to a stop.

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No, the coefficient of static friction cannot be greater than 1. The coefficient of static friction is a dimensionless quantity that represents the frictional force between two surfaces when they are at rest relative to each other. It is a ratio of the maximum static frictional force to the normal force between the surfaces.

The coefficient of static friction typically ranges from 0 to 1, and it represents the ratio of the maximum frictional force to the normal force. A value of 1 indicates that the maximum static frictional force is equal to the normal force, which is the maximum possible friction before motion occurs. If the coefficient of static friction were greater than 1, it would imply that the maximum frictional force is greater than the normal force, which is not physically possible.

In general, the coefficient of static friction is less than or equal to 1 because it represents the ratio of the maximum frictional force to the normal force. If the coefficient were greater than 1, it would imply that the maximum frictional force exceeds the normal force, which contradicts the principles of mechanics. The maximum frictional force cannot be greater than the force pressing the surfaces together.

Therefore, the coefficient of static friction cannot exceed 1 and is typically lower, indicating that the maximum frictional force is limited by the normal force.

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Complete Question:

Can the coefficient of static friction be greater than 1?